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Enhanced Query Optimization Using R Tree Variants in a Map Reduce framework for storing spatial data Vaishnavi S 1, Subhashini K 2, Sangeetha K 3, Nalayini 4 1,2,3 Information Technology, Velammal Engineering College,Chennai, TamilNadu, India. 4 Velammal Engineering College,Chennai, TamilNadu, India. ABSRACT: The Map-reduce has become one of the inevitable programming framework for developing distributed data storage and information retrieval (IR) [1]. Efficient method for mining data and its fast retrieval has become the key concern over years. Various indexing mechanisms have been developed in Hadoop Map-reduce framework , an open-source implementation of Google. The framework consist of two basic functions- the map() function which partition the input into smaller sub-problems and distribute them to worker nodes, the reduce() function which aggregate the sub-outputs from the worker nodes to retrieve the final output.

Enhanced Query Optimization Using R Tree Variants in a Map Reduce Framework for Storing Spatial Data 1Vaishnavi S , Subhashini K 2, Sangeetha K 3, Nalayini C.M 4 1,2,3 B.Tech Information Technology, Velammal Engineering College,Chennai, TamilNadu, India. 4 Velammal Engineering College,Chennai, TamilNadu, India. ABSRACT: The Map-reduce has become one of the inevitable

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